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Negative differential resistance as a critical indicator for the discharge capacity of lithium-oxygen batteries

机译:负差分电阻是锂氧电池放电容量的关键指标

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摘要

In non-aqueous lithium-oxygen batteries, the one-electron reduction of oxygen and subsequent lithium oxide formation both occur during discharge. This lithium oxide can be converted to insulating lithium peroxide via two different pathways: a second reduction at the cathode surface or disproportionation in solution. The latter process is known to be advantageous with regard to increasing the discharge capacity and is promoted by a high donor number electrolyte because of the stability of lithium oxide in media of this type. Herein, we report that the cathodic oxygen reduction reaction during discharge typically exhibits negative differential resistance. Importantly, the magnitude of negative differential resistance, which varies with the system component, and the position of the cathode potential relative to the negative differential resistance determined the reaction pathway and the discharge capacity. This result implies that the stability of lithium oxide on the cathode also contributes to the determination of the reaction pathway.
机译:在非水锂氧电池中,氧的单电子还原和随后的氧化锂形成均在放电期间发生。该氧化锂可通过两种不同的途径转化为绝缘的过氧化锂:阴极表面的第二次还原或溶液中的歧化。已知后一种方法在增加放电容量方面是有利的,并且由于氧化锂在这种类型的介质中的稳定性而由高施主数的电解质促进。在此,我们报道放电期间的阴极氧还原反应通常表现出负的差动电阻。重要的是,负差分电阻的大小随系统组件而变化,而阴极电势相对于负差分电阻的位置决定了反应路径和放电容量。该结果表明,阴极上氧化锂的稳定性也有助于确定反应路径。

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